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Talmor, Y.

Publications and source records attributed to Talmor, Y..

2 recordsLinked to original sources

Intracellular carbon storage enables starvation survival in marine bacteria

Heterotrophic marine bacteria frequently experience fluctuations in carbon availability driven by phytoplankton dynamics. As a result, bacteria undergo repeated cycles of rapid growth during brief resource pulses followed by prolonged starvation. Yet the mechanisms that support bacterial survival during nutrient limitation remain poorly understood. Here, we investigate starvation survival in the algal-associated bacterium Phaeobacter inhibens. We show that cells remain viable for extended periods under carbon depletion while undergoing physiological and morphological changes. Using electron microscopy, metabolomics, and genetic approaches, we identify intracellular polyhydroxybutyrate (PHB) granules as a key factor supporting survival during starvation. PHB accumulates during growth and is progressively consumed under carbon limitation. Deletion of the PHB synthase gene (phaC) eliminates granule formation and reduces long-term viability. Comparative analyses show that the genetic capacity for PHB biosynthesis is widespread among members of the Roseobacter group, suggesting a conserved strategy among algal-associated bacteria. However, species lacking PHB also survive starvation, indicating that additional mechanisms contribute to persistence under nutrient limitation. Together, our results identify intracellular carbon storage as a central mechanism linking bacterial physiology to survival in fluctuating marine environments, and highlight the diversity of strategies shaping microbial community dynamics and carbon cycling in the ocean.

microbiology↗

Genomic signatures of increasing disease burden in recent prehistory

One of the strongest selection pressures experienced by human populations is that driven by diseases on immune-related genomic regions. While it has been hypothesized for some time that disease burdens increased with the shift to agricultural and urbanized lifestyles, direct evidence for this hypothesis is lacking. Here, we capitalize on the accumulation of ancient genomic data to study changes in disease burden in human populations over the past 12,000 years. We investigated changes in genetic diversity and balancing selection in two distinct geographical and cultural centers in Southwest Eurasia and Eastern Asia, and found that not only is the major histocompatibility complex (MHC) the genomic region with the most substantial increases in diversity in terms of enrichment of genes and rates of increase, but that the rates of changes for individual genes are highly correlated between the two cultural centers, indicating similar selection pressures. We identify periods of time with substantial peaks in MHC diversity increase that primarily correspond to periods with settlement intensification, increased connectivity, and the expansion of animal domestication, which suggest that the most intensive disease burden occurred following the transition to sedentary lifestyle but prior to urbanization. These findings demonstrate the potential of our approach in uncovering the interplay between cultural shifts and selection, and provide strong support to the hypothesis that the levels of disease burden have substantially increased in recent prehistory following changes in lifestyle, connectivity and the introduction of domesticated animals.

evolutionary biology↗